作者
Yi Yang, Feiping Nie, Dong Xu, Jiebo Luo, Yueting Zhuang, Yunhe Pan
发表日期
2011/8/18
期刊
IEEE Transactions on Pattern Analysis and Machine Intelligence
卷号
34
期号
4
页码范围
723-742
出版商
IEEE
简介
We present a new framework for multimedia content analysis and retrieval which consists of two independent algorithms. First, we propose a new semi-supervised algorithm called ranking with Local Regression and Global Alignment (LRGA) to learn a robust Laplacian matrix for data ranking. In LRGA, for each data point, a local linear regression model is used to predict the ranking scores of its neighboring points. A unified objective function is then proposed to globally align the local models from all the data points so that an optimal ranking score can be assigned to each data point. Second, we propose a semi-supervised long-term Relevance Feedback (RF) algorithm to refine the multimedia data representation. The proposed long-term RF algorithm utilizes both the multimedia data distribution in multimedia feature space and the history RF information provided by users. A trace ratio optimization problem is then …
引用总数
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学术搜索中的文章
Y Yang, F Nie, D Xu, J Luo, Y Zhuang, Y Pan - IEEE Transactions on Pattern Analysis and Machine …, 2011